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On the Expressive Power of Deep Architectures

机译:论深度架构的表现力

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摘要

Deep architectures are families of functions corresponding to deep circuits. Deep Learning algorithms are based on parametrizing such circuits and tuning their parameters so as to approximately optimize some training objective. Whereas it was thought too difficult to train deep architectures, several successful algorithms have been proposed in recent years. We review some of the theoretical motivations for deep architectures, as well as some of their practical successes, and propose directions of investigations to address some of the remaining challenges.
机译:深度架构是与深度电路相对应的功能系列。深度学习算法基于对此类电路进行参数化并调整其参数,以便大致优化某些训练目标。认为训练深度架构太困难了,但是近年来已经提出了几种成功的算法。我们回顾了深层架构的一些理论动机,以及它们在实践中取得的一些成功,并提出了研究方向以应对一些尚存的挑战。

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